Hunter syndrome (mucopolysaccharidosis type II): Molecular mechanisms, CNS biomarkers, and emerging therapeutic strategies

Hunter syndrome (mucopolysaccharidosis type II, MPS II) is an X-linked lysosomal storage disorder caused by deficiency of iduronate-2-sulfatase (IDS), leading to lysosomal accumulation of glycosaminoglycans (GAGs), dermatan sulfate and heparan sulfate. Although traditionally viewed as an inherited metabolic disease, increasing evidence indicates that the most severe clinical burden of MPS II arises from central nervous system (CNS) dysfunction driven by convergent neurobiological mechanisms relevant to neuropsychiatric and neurodegenerative disorders. GAGs accumulation disrupts lysosomal integrity, impairs autophagy–lysosome flux, alters mitochondrial homeostasis, and activates innate immune pathways, including NLRP3 inflammasome signaling. These processes promote chronic neuroinflammation, microglial activation, secondary lipid and ganglioside storage, axonal injury, and progressive cognitive and behavioral decline in neuronopathic MPS II. Multimodal biomarkers-including cerebrospinal fluid heparan sulfate, neurofilament light chain, and neuroimaging-link molecular pathology to neuronal injury and provide objective measures of CNS disease burden and therapeutic response. The genetic complexity of the IDS locus contributes to marked phenotypic heterogeneity and informs both diagnosis and prognosis. Advances in newborn screening and molecular diagnostics now enable earlier identification of affected individuals, creating opportunities for timely intervention before irreversible neurodegeneration occurs. Here, we review current insights into lysosomal-immune-neuronal crosstalk in MPS II and discuss emerging CNS-targeted therapeutic strategies, including blood-brain barrier-penetrant enzyme replacement therapies, intracerebroventricular delivery, AAV-mediated gene therapy, genome editing, and adjunctive approaches targeting neuroinflammation and cellular clearance. Collectively, MPS II serves as a model disorder illustrating how lysosomal dysfunction and innate immune activation converge to drive neurodegeneration, with broader implications for translational research in psychiatric and neurodegenerative disease.

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Journal
Experimental and Molecular Pathology
Published
2026-09-30
DOI
https://doi.org/10.1016/j.yexmp.2026.105079
Primary Topic
Lysosomal Storage Disorders Research
Type
article
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Hunter syndrome (mucopolysaccharidosis type II): Molecular mechanisms, CNS biomarkers, and emerging therapeutic strategies

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article

Hunter syndrome (mucopolysaccharidosis type II): Molecular mechanisms, CNS biomarkers, and emerging therapeutic strategies

Sang Hoon Kim, Euiyeon Lee, Yongkyu Park, Mohammad Abdur Rashid, Amelia Michelle Sojung Moon, Chong Kun Cheon, Sang Hoon Lee, Hyung-Goo Kim, Mi-Hyeon Jang
article en

Abstract

Hunter syndrome (mucopolysaccharidosis type II, MPS II) is an X-linked lysosomal storage disorder caused by deficiency of iduronate-2-sulfatase (IDS), leading to lysosomal accumulation of glycosaminoglycans (GAGs), dermatan sulfate and heparan sulfate. Although traditionally viewed as an inherited metabolic disease, increasing evidence indicates that the most severe clinical burden of MPS II arises from central nervous system (CNS) dysfunction driven by convergent neurobiological mechanisms relevant to neuropsychiatric and neurodegenerative disorders. GAGs accumulation disrupts lysosomal integrity, impairs autophagy–lysosome flux, alters mitochondrial homeostasis, and activates innate immune pathways, including NLRP3 inflammasome signaling. These processes promote chronic neuroinflammation, microglial activation, secondary lipid and ganglioside storage, axonal injury, and progressive cognitive and behavioral decline in neuronopathic MPS II. Multimodal biomarkers-including cerebrospinal fluid heparan sulfate, neurofilament light chain, and neuroimaging-link molecular pathology to neuronal injury and provide objective measures of CNS disease burden and therapeutic response. The genetic complexity of the IDS locus contributes to marked phenotypic heterogeneity and informs both diagnosis and prognosis. Advances in newborn screening and molecular diagnostics now enable earlier identification of affected individuals, creating opportunities for timely intervention before irreversible neurodegeneration occurs. Here, we review current insights into lysosomal-immune-neuronal crosstalk in MPS II and discuss emerging CNS-targeted therapeutic strategies, including blood-brain barrier-penetrant enzyme replacement therapies, intracerebroventricular delivery, AAV-mediated gene therapy, genome editing, and adjunctive approaches targeting neuroinflammation and cellular clearance. Collectively, MPS II serves as a model disorder illustrating how lysosomal dysfunction and innate immune activation converge to drive neurodegeneration, with broader implications for translational research in psychiatric and neurodegenerative disease.

Experimental and Molecular PathologyVol. 148
Rutgers, The State University of New Jersey (US), Pusan National University Yangsan Hospital (KR), Pusan National University (KR)
Good health and well-being
Openalex Percentile: Top 12%
Lysosomal Storage Disorders Research
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